Trunk muscle strength in eccentric and concentric lateral flexion

被引:14
作者
Huang, QM
Thorstensson, A
机构
[1] Stockholm Univ, Coll Phys Educ & Sports, Karolinska Inst, Dept Neurosci,Biomech & Motor Control Lab, SE-11486 Stockholm, Sweden
[2] Stockholm Univ, Coll Phys Educ & Sports, Dept Sport & Hlth Sci, SE-11486 Stockholm, Sweden
关键词
concentric; eccentric; isokinetic; lateral flexion; torque-velocity;
D O I
10.1007/s004210000307
中图分类号
Q4 [生理学];
学科分类号
071003 [生理学];
摘要
The aim of this study was to investigate the position and velocity dependency of the strength (torque) output of lateral flexor muscles of the trunk. Twelve male volunteers with no history of back pain participated. Movement was constrained to the frontal plane and the velocity was controlled by an isokinetic dynamometer. The eccentric and concentric strength of lateral flexor muscles on the left side was measured in a supine position at velocities of 15, 30, 45 and 60 degrees .s(-1) and static strength at 20, 10, 0, -10 and -20 degrees of lateral trunk flexion. Average peak torque values ranged between 211 and 218 Nm (eccentric) and between 66 and 140 Nm (concentric) over all tested velocities, and the average static torque ranged between 80 and 172 Nm over all tested positions. The shape of the torque-position curves was unaffected by speed and peak torque occurred at an average position of 11-15 degrees to the contralateral (right) side in both eccentric and concentric actions. In eccentric actions, torque output was significantly higher than that during concentric and static actions. Increasing the speed of contraction did not affect eccentric torque values, whereas both peak and angle-specific concentric torque decreased with increasing speed. These results are in general accordance with earlier findings from other muscle groups, such as the knee extensors. However, they are partially at variance with results obtained in studies of lateral lifting and lowering, indicating that there are other limiting factors in complex tasks that do not just involve the trunk muscles.
引用
收藏
页码:573 / 577
页数:5
相关论文
共 19 条
[1]
ANDERSSON E, 1988, MED SCI SPORT EXER, V20, P587
[2]
CHANGES IN INTRAABDOMINAL PRESSURE, TRUNK MUSCLE ACTIVATION AND FORCE DURING ISOKINETIC LIFTING AND LOWERING [J].
CRESSWELL, AG ;
THORSTENSSON, A .
EUROPEAN JOURNAL OF APPLIED PHYSIOLOGY AND OCCUPATIONAL PHYSIOLOGY, 1994, 68 (04) :315-321
[3]
EXERCISE-INDUCED MUSCLE DAMAGE AND ADAPTATION [J].
EBBELING, CB ;
CLARKSON, PM .
SPORTS MEDICINE, 1989, 7 (04) :207-234
[4]
RISK-FACTORS IN LOW-BACK-PAIN - AN EPIDEMIOLOGICAL SURVEY [J].
FRYMOYER, JW ;
POPE, MH ;
CLEMENTS, JH ;
WILDER, DG ;
MACPHERSON, B ;
ASHIKAGA, T .
JOURNAL OF BONE AND JOINT SURGERY-AMERICAN VOLUME, 1983, 65 (02) :213-218
[5]
Pulling force in lateral lifting and lowering [J].
Huang, QM ;
Sato, M ;
Thorstensson, A .
ERGONOMICS, 1998, 41 (06) :899-908
[6]
Komi PV., 1973, NEW DEV ELECTROMYOGR, P596, DOI DOI 10.1159/000394061
[7]
HUMAN TRUNK STRENGTH PROFILE IN LATERAL FLEXION AND AXIAL ROTATION [J].
KUMAR, S ;
DUFRESNE, RM ;
VANSCHOOR, T .
SPINE, 1995, 20 (02) :169-177
[8]
THE ROLE OF DYNAMIC 3-DIMENSIONAL TRUNK MOTION IN OCCUPATIONALLY-RELATED LOW-BACK DISORDERS - THE EFFECTS OF WORKPLACE FACTORS, TRUNK POSITION, AND TRUNK MOTION CHARACTERISTICS ON RISK OF INJURY [J].
MARRAS, WS ;
LAVENDER, SA ;
LEURGANS, SE ;
RAJULU, SL ;
ALLREAD, WG ;
FATHALLAH, FA ;
FERGUSON, SA .
SPINE, 1993, 18 (05) :617-628
[9]
TRUNK STRENGTHS IN ATTEMPTED FLEXION, EXTENSION, AND LATERAL BENDING IN HEALTHY-SUBJECTS AND PATIENTS WITH LOW-BACK DISORDERS [J].
MCNEILL, T ;
WARWICK, D ;
ANDERSSON, G ;
SCHULTZ, A .
SPINE, 1980, 5 (06) :529-538
[10]
Tension regulation during lengthening and shortening actions of the human soleus muscle [J].
Pinniger, GJ ;
Steele, JR ;
Thorstensson, A ;
Cresswell, AG .
EUROPEAN JOURNAL OF APPLIED PHYSIOLOGY, 2000, 81 (05) :375-383